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Here's the code for a simple page I have that is not working:

    <head>
<script src="js/jquery-1.7.min.js"></script>

<script type="text/javascript">
<!--
$("input[type=radio]").on('click', function(){
    if ($('#radio1').is(':checked')){
        $("#grid_9.omega").slideDown("slow");
    } else { 
        $("#grid_9.omega").slideUp("slow");
    }
});
//-->
</script>
</head>

<body>
<form id="form1" name="form1" method="post" action="">
  <p>
    <label>
      <input type="radio" name="RadioGroup1" value="radio1" id="radio1" />
      Radio 1</label>
    <br />
    <label>
      <input type="radio" name="RadioGroup1" value="radio2" id="radio2" />
      Radio 2</label>
    <br />
    <label>
      <input type="radio" name="RadioGroup1" value="radio3" id="radio3" />
      Radio 3</label>
    <br />
  </p>
</form>
<div id="grid_9" class="omega" style="display:none">show me when Radio 1 is chosen​</div>
</body>

My goal is to use jquery to display div "grid_9.omega" when "radio1" is selected, but have that div hidden when "radio1" isn't selected.

Advice?

share|improve this question

3 Answers 3

up vote 1 down vote accepted

Try this: jsFiddle

<script type="text/javascript">
$(function() {
$("input[type=radio]").on('click', function(){
    if ($('#radio1').is(':checked')){
        $("#grid_9.omega").slideDown("slow");
    } else { 
        $("#grid_9.omega").slideUp("slow");
    }
});
});
</script>
<form id="form1" name="form1" method="post" action="">
  <p>
    <label>
      <input type="radio" name="RadioGroup1" value="radio1" id="radio1" />
      Radio 1</label>
    <br />
    <label>
      <input type="radio" name="RadioGroup1" value="radio2" id="radio2" />
      Radio 2</label>
    <br />
    <label>
      <input type="radio" name="RadioGroup1" value="radio3" id="radio3" />
      Radio 3</label>
    <br />
  </p>
</form>
<div id="grid_9" class="omega" style="display:none">show me when Radio 1 is chosen</div>

All I changed from your code was I added the document ready in the beginning of the script.

share|improve this answer

Simply you can do:

$("input[type=radio]").on('click', function(){
    if(this.id == 'radio1')
        $("#grid_9.omega").slideDown("slow");
    else
       $("#grid_9.omega").slideUp("slow");
});

Working sample

If your radio is dynamic i.e. append to DOM after page load then you need delegate event handler like following:

$('body').on('click', 'input[type=radio]', function() {
  if(this.id == 'radio1')
      $("#grid_9.omega").slideDown("slow");
  else
     $("#grid_9.omega").slideUp("slow");
});

Instead of input[type=radio] you can use only :radio as selector. i.e

$(':radio').on('click', ...)

or

$('body').on('click', ':radio',..)

Note

In case of delegate event it would be better to use any other static element instead of body. Suppose, if your form1 is Static to DOM i.e belong to DOM at time of page load then instead of

$('body').on('click', 'input[type=radio]', function() {..})

you should use

$('#form1').on('click', 'input[type=radio]', function() {..})

Remainder

Place all of your code within

$(document).ready(function() {
  // your code
});

is short

$(function() {
  // your code
});
share|improve this answer

Try with this

<script type="text/javascript">
<!--
$(function(){
    $(document).on('change','input:radio', function(){
        if ($('#radio1').is(':checked')){
            $("#grid_9.omega").slideDown("slow");
        } else { 
            $("#grid_9.omega").slideUp("slow");
        }
    });
}
//-->
</script>

jsFiddle demo

share|improve this answer
    
No, that doesn't work either. –  user1484219 Jun 27 '12 at 1:25
    
simple syntax error closing , missing final closing bracket –  charlietfl Jun 27 '12 at 1:29
    
also should it be 'input[type="radio"]' - with the double quotes? –  Josh Mc Jun 27 '12 at 1:29
    
missed a ,. please try again –  Claudio Redi Jun 27 '12 at 1:30

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